Low Energy Direct Contact Membrane Distillation: Towards optimal flow configuration

M. Awad, I. Janajreh, H. Fath
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引用次数: 4

Abstract

Computational Fluid Dynamics (CFD) is used to study the steady state performance of Low Energy Direct Contact Membrane Distillation (DCMD). Two-dimensional numerical model with parallel and counter flow is developed. A case of parabolic flow with characteristic velocity is considered entering the domain from the feed and permeate sides at 40°C and 25°C respectively. The model parameters were measured in the consideration of two dimensional, steady state, and incompressible fluid flow using the complete Navier-Stokes coupled with the energy equation for non-isothermal flow. The feed stream is saline water (4% salinity) which is a mixture of two miscible species, whereas the permeate stream comprises of pure water. Across the membrane the temperature difference creates pressure gradient which is responsible for the transport of energy and vapor mass through the pours of the permeable membrane. The membrane's coefficients of DCMD membrane is evaluated along with the mass flux, heat flux, and temperature polarization factor and results showed a good agreement with the published theoretical work. In view of these plausible results, parametrical study was conducted accounting for parallel and counter flow, different in flow rate and inlet temperature in attempting to achieve optimal operation. In the results section, the mass flux, heat flux, temperature polarization were calculated and discussed based on the simulation.
低能量直接接触膜蒸馏:走向最佳流动配置
利用计算流体力学(CFD)对低能量直接接触膜蒸馏(DCMD)的稳态性能进行了研究。建立了具有平行流和逆流的二维数值模型。考虑了一种具有特征速度的抛物流在40℃和25℃分别从进料侧和渗透侧进入区域的情况。采用完全Navier-Stokes耦合非等温流动的能量方程,在考虑二维、稳态和不可压缩流体流动的情况下对模型参数进行了测量。进料流是盐水(含盐量为4%),它是两种可混种的混合物,而渗透流由纯水组成。在膜上,温差产生压力梯度,这是能量和蒸汽质量通过渗透膜的输送的原因。结合质量通量、热流通量和温度极化因子对DCMD膜的膜系数进行了计算,结果与已发表的理论研究结果吻合较好。鉴于这些看似合理的结果,为了达到最优运行,对平行流和逆流、不同流量和进口温度进行了参数化研究。结果部分在模拟的基础上对质量通量、热流通量、温度极化进行了计算和讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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